增材制造技术在生物质电化学增值中的应用

Q2 Materials Science
Gianluca Palmara, David Carvajal, Marcileia Zanatta, Elena Mas-Marza, Victor Sans
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引用次数: 0

摘要

生物质能增值作为一种可持续和容易获得的可再生选择正在获得认可,以生产非来自化石燃料的燃料和化学品,从而有助于能源和化学工业的脱碳。电合成是一种将生物质基化合物转化为增值产品的有效而有利的方法,在许多方面超越了传统的合成途径。然而,技术和几何限制阻碍了它的广泛实施和发展。在这种背景下,增材制造有可能成为电化学反应领域的一项颠覆性技术,能够创建具有复杂几何形状的定制设计电池和反应器。这篇前瞻性文章深入探讨了这种创新和广泛可获得的技术在生物质增值有机电合成中的应用,强调了它在提高性能,优化质量传输现象以及促进各种应用的高效和可扩展电化学系统设计方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Additive manufacturing technologies applied to the electrochemical valorization of biomass

Biomass valorization is gaining recognition as a sustainable and easily accessible renewable option to produce fuels and chemicals non-derived from fossil fuels, thus contributing to the decarbonization of the energy and chemical industries. Electrosynthesis represents a potent and advantageous method to transform biomass-based compounds into added-value products, surpassing conventional synthetic pathways in various aspects. Nevertheless, technical and geometrical constraints preclude its widespread implementation and development. Within this context, additive manufacturing has the potential to emerge as a disruptive technology in the field of electrochemical reactions, enabling the creation of custom-designed cells and reactors with intricate geometry. This perspective article delves into the applications of this innovative and widely accessible technology in organic electrosynthesis for biomass valorization, highlighting its potential to enhance performance, optimize mass transport phenomena, and facilitate the design of efficient and scalable electrochemical systems for various applications.

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来源期刊
Current Research in Green and Sustainable Chemistry
Current Research in Green and Sustainable Chemistry Materials Science-Materials Chemistry
CiteScore
11.20
自引率
0.00%
发文量
116
审稿时长
78 days
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